Explainable AI for Cybersecurity

Author:

Sindiramutty Siva Raja1,Tan Chong Eng2ORCID,Lau Sei Ping2,Thangaveloo Rajan3ORCID,Gharib Abdalla Hassan4,Manchuri Amaranadha Reddy5ORCID,Khan Navid Ali1,Tee Wee Jing1,Muniandy Lalitha6

Affiliation:

1. Taylor's University, Malaysia

2. Universiti Malaysia Sarawak, Malaysia

3. University Malaysia Sarawak, Malaysia

4. Zanzibar University, Tanzania

5. Kyungpook National University, South Korea

6. Tunku Abdul Rahman University of Management and Technology, Malaysia

Abstract

In recent years, the utilization of AI in the field of cybersecurity has become more widespread. Black-box AI models pose a significant challenge in terms of interpretability and transparency, which is one of the major drawbacks of AI-based systems. This chapter explores explainable AI (XAI) techniques as a solution to these challenges and discusses their application in cybersecurity. The chapter begins with an explanation of AI in cybersecurity, including the types of AI commonly utilized, such as DL, ML, and NLP, and their applications in cybersecurity, such as intrusion detection, malware analysis, and vulnerability assessment. The chapter then highlights the challenges with black-box AI, including difficulty identifying and resolving errors, the lack of transparency, and the inability to understand the decision-making process. The chapter then delves into XAI techniques for cybersecurity solutions, including interpretable machine-learning models, rule-based systems, and model explanation techniques.

Publisher

IGI Global

Reference264 articles.

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